在定量研究中数据清理的入门教程:处理缺失值和异常值
Amir Masoud Sharifnia1, Daniel Edem Kpormegbey2, Deependra Kaji Thapa2,3
1Student Research Committee, Khomein University of Medical Sciences, Khomein, Iran.
Journal of advanced nursing
|March 27, 2025
概括
有效的数据清理对于可靠的研究至关重要. 本文指导处理缺失值和异常值,以提高定量数据集质量,以准确,基于证据的决策.
科学领域:
- 定量数据分析是一种量化数据分析.
- 数据科学方法论数据科学方法论
- 研究完整性研究完整性
背景情况:
- 数据质量对于可靠的研究结果至关重要.
- 数据异常,包括缺失的值和异常值,可能会导致结果偏差.
- 不完整,杂或不一致的数据损害了基于证据的决策.
研究的目的:
- 提供关于基本数据清理技术的指导.
- 突出处理缺失值和异常值的重要性.
- 提高定量数据集的质量和可靠性.
主要方法:
- 对数据清理过程的方法论讨论.
- 对识别数据异常的技术的概述.
- 解决缺失数据和异常值的策略.
主要成果:
- 数据异常会对统计分析和模型参数产生重大影响.
- 数据清理提高了数据质量,导致更准确的发现.
- 介绍了选,诊断和纠正数据错误的技术.
结论:
- 适当的数据清理,特别是管理缺失值和异常值,对于可靠的统计分析至关重要.
- 高质量的数据确保了研究结果的有效性和准确性.
- 可靠的数据支持基于证据的决策,以获得最佳结果.
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